留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

The role of grain boundaries in solid-state Li-metal batteries

Emily Milan Mauro Pasta

Emily Milan, Mauro Pasta. The role of grain boundaries in solid-state Li-metal batteries[J]. Materials Futures, 2023, 2(1): 013501. doi: 10.1088/2752-5724/aca703
Citation: Emily Milan, Mauro Pasta. The role of grain boundaries in solid-state Li-metal batteries[J]. Materials Futures, 2023, 2(1): 013501. doi: 10.1088/2752-5724/aca703
Perspective •
OPEN ACCESS

The role of grain boundaries in solid-state Li-metal batteries

doi: 10.1088/2752-5724/aca703
More Information
  • Figure  1.  (a) The calculated polycrystalline (red solid line) and bulk (black dashed line) conductivity of Li3OCl at 300 K as a function of grain size. The blue band represents the polycrystalline upper and lower limits based on different densification behaviours. Reprinted with permission from [4]. Copyright (2018) American Chemical Society. (b) Na-Na and Na-P Radial Distribution Functions calculated for bulk and polycrystalline (grain volumes of 108 and 2.16 nm3) Na3PS4 (left) and Na3PO4 (right) at 400 K. Reprinted with permission from [16]. Copyright (2019) American Chemical Society. (c) Ionic conductivities for the bulk and grain boundaries of Li3OCl (top), Li3PS4 (middle) and Li3InCl6 (bottom). Corresponding activation energies, Ea, for each system are also shown. Reproduced from [21]. CC BY 4.0.

    Figure  2.  (a) SEM image of the fractured surface of cycled LLZO, showing apparent lithium deposition along grain boundaries. Reprinted from [1], Copyright (2017), with permission from Elsevier. (b) Example calculation of the elastic modulus across a grain boundary in LLZO carried out by Yu and Siegel and used to explain why lithium accumulates along grain boundaries. Reprinted with permission from [32]. Copyright (2018) American Chemical Society. (c) Suggested mechanism of intergranular lithium deposition in which grain boundaries act as fast-diffusion pathways, resulting in a pile up’ of lithium at the anode-electrolyte interface. Reprinted with permission from [32]. Copyright (2018) American Chemical Society. (d) Schematic showing how electrons tunnelling into the solid electrolyte can reduce lithium ions and result in lithium deposits which interconnect over time. This is proposed to occur preferentially along grain boundaries thanks to their reduced band gaps. Reproduced from [33], with permission from Springer Nature.

    Figure  3.  Finite element analysis of the current density distribution at Li|SG-LPSCl and Li|LG-LPSCl interfaces obtained via digitisation of FIB-SEM images. Sharper and deeper flaws are observed in the LG case. (SGsmall grain, LGlarge grain). Reprinted from [41], Copyright (2022), with permission from Elsevier.

    Figure  4.  CCD and fracture toughness of LLZO samples as a function of grain size. Reprinted from [44] with permission from the Royal Society of Chemistry.

    Figure  5.  Critical research fronts necessary to gain a complete understanding of the role of grain boundaries in solid-state electrolytes, and reduce their detrimental effects.

    Table  1.   Summary of microstructural, mechanical and electrochemical properties of different LLZO samples investigated by Sharafi et al A-1300 C refers to a HP-1100 C sample which was subsequently annealed at 1300 C for 50 h. Reprinted from [44] with permission from the Royal Society of Chemistry.

    Microstructural propertiesMechanical propertiesElectrochemical properties
    PelletPhase purityRelative density (%)dave (μm)Misorientation angle ()H (GPa)KIC (MPa m1/2)total (mS cm-1)CCD (mA cm-2)
    HP-1100 CCubic LLZO96.0 0.55 2209.88 0.490.82 0.070.460.3
    HP-1200 C3 vol% pyrochlore97.7 0.540 13358.05 0.520.61 0.050.520.4
    HP-1250 C1 vol% pyrochlore98.1 0.560 20407.74 0.460.60 0.060.540.4
    HP-1300 CCubic LLZO99.4 0.580 20407.42 0.480.61 0.040.560.5
    A-1300 CCubic LLZO99.4 0.5600 200416.80 0.490.60 0.050.570.6
    下载: 导出CSV
  • [1] Cheng E J, Sharafi A, Sakamoto J 2017 Intergranular Li metal propagation through polycrystalline Li6.25Al0.25La3Zr2O12 ceramic electrolyte Electrochim. Acta 223 85-91 doi: 10.1016/j.electacta.2016.12.018
    [2] Ohring M 2002 Interdiffusion, reactions and transformations in thin films Materials Science of Thin FilmsNew YorkAcademicch 11
    [3] Mishin Y, Herzig C 1999 Grain boundary diffusion: recent progress and future research Mater. Sci. Eng. 260 55-71 doi: 10.1016/S0921-5093(98)00978-2
    [4] Dawson J A, Canepa P, Famprikis T, Masquelier C, Islam M S 2018 Atomic-scale influence of grain boundaries on Li-ion conduction in solid electrolytes for all-solid-state batteries J. Am. Chem. Soc. 140 362-8 doi: 10.1021/jacs.7b10593
    [5] L X, Howard J W, Chen A, Zhu J, Li S, Wu G, Dowden P, Xu H, Zhao Y, Jia Q 2016 Antiperovskite Li3OCl superionic conductor films for solid-state Li-ion batteries Adv. Sci. 3 3 doi: 10.1002/advs.201500359
    [6] L X, Wu G, Howard J W, Chen A, Zhao Y, Daemen L L, Jia Q 2014 Li-rich anti-perovskite Li3OCl films with enhanced ionic conductivity Chem. Commun. 50 11520-2 doi: 10.1039/C4CC05372A
    [7] Zhu J, Li S, Zhang Y, Howard J W, L X, Li Y, Wang Y, Kumar R S, Wang L, Zhao Y 2016 Enhanced ionic conductivity with Li7O2Br3 phase in Li3OBr anti-perovskite solid electrolyte Appl. Phys. Lett. 109 9 doi: 10.1063/1.4962437
    [8] Ma C, Chen K, Liang C, Nan C W, Ishikawa R, More K, Chi M 2014 Atomic-scale origin of the large grain-boundary resistance in perovskite Li-ion-conducting solid electrolytes Energy Environ. Sci. 7 1638-42 doi: 10.1039/c4ee00382a
    [9] Wu J F, Guo X 2017 Origin of the low grain boundary conductivity in lithium ion conducting perovskites: Li3xLa0.67−xTiO3 Phys. Chem. Chem. Phys. 19 5880-7 doi: 10.1039/c6cp07757a
    [10] Tiku S K, Kroger F A 1980 Effects of space charge, grain-boundary segregation and mobility differences between grain boundary and bulk on the conductivity of polycrystalline Al2O3 J. Am. Ceram. Soc. 63 183-9 doi: 10.1111/j.1151-2916.1980.tb10688.x
    [11] Tschope A 2001 Grain size-dependent electrical conductivity of polycrystalline cerium oxide II: space charge model Solid State Ion. 139 267-80 doi: 10.1016/S0167-2738(01)00677-4
    [12] Guo X, Ding Y 2004 Grain boundary space charge effect in zirconia J. Electrochem. Soc. 151 J1 doi: 10.1149/1.1625948
    [13] Dur O J, Lpez De La Torre M A, Vzquez L, Chaboy J, Boada R, Rivera-Calzada A, Santamaria J, Leon C 2010 Ionic conductivity of nanocrystalline yttria-stabilized zirconia: Grain boundary and size effects Phys. Rev. B 81 5 doi: 10.1103/PhysRevB.81.184301
    [14] Kjlseth C, Fjeld H, Prytz , Dahl P I, Estourns C, Haugsrud R, Norby T 2010 Space-charge theory applied to the grain boundary impedance of proton conducting BaZr0.9Y0.1O3 - Solid State Ion. 181 268-75 doi: 10.1016/j.ssi.2010.01.014
    [15] Yu S, Siegel D J 2017 Grain boundary contributions to Li-ion transport in the solid electrolyte Li7La3Zr2O12 (LLZO) Chem. Mater. 29 9639-47 doi: 10.1021/acs.chemmater.7b02805
    [16] Dawson J A, Canepa P, Clarke M J, Famprikis T, Ghosh D, Islam M S 7 2019 Toward understanding the different influences of grain boundaries on ion transport in sulfide and oxide solid electrolytes Chem. Mater. 31 5296-304 doi: 10.1021/acs.chemmater.9b01794
    [17] Lu Z, Chen C, Baiyee Z M, Chen X, Niu C, Ciucci F 2015 Defect chemistry and lithium transport in Li3OCl anti-perovskite superionic conductors Phys. Chem. Chem. Phys. 17 32547-55 doi: 10.1039/c5cp05722a
    [18] Deng Z, Radhakrishnan B, Ong S P 2015 Rational composition optimization of the lithium-rich Li3OCl1−xBrx anti-perovskite superionic conductors Chem. Mater. 27 3749-55 doi: 10.1021/acs.chemmater.5b00988
    [19] Emly A, Kioupakis E, Van Der Ven A 2013 Phase stability and transport mechanisms in antiperovskite Li3OCl and Li3OBr superionic conductors Chem. Mater. 25 4663-70 doi: 10.1021/cm4016222
    [20] Mouta R, Melo M A B, Diniz E M, Paschoal C W A 2014 Concentration of charge carriers, migration and stability in Li3OCl solid electrolytes Chem. Mater. 26 7137-44 doi: 10.1021/cm503717e
    [21] Quirk J A, Dawson J A 2022 Design principles for grain boundaries in solid-state lithium-ion conductors ChemRxiv Preprint10.26434/chemrxiv-2022-0jghq
    [22] Kuhn A, Duppel V, Lotsch B V 2013 Tetragonal Li10GeP2S12 and Li7GePS8 - exploring the Li ion dynamics in LGPS Li electrolytes Energy Environ. Sci. 6 3548-52 doi: 10.1039/c3ee41728j
    [23] Bron P, Dehnen S, Roling B 2016 Li10Si0.3Sn0.7P2S12 - a low-cost and low-grain-boundary-resistance lithium superionic conductor J. Power Sources 329 530-5 doi: 10.1016/j.jpowsour.2016.08.115
    [24] Duchardt M, Ruschewitz U, Adams S, Dehnen S, Roling B 2018 Vacancy-controlled Na+ superion conduction in Na11Sn2PS12 Angew. Chem., Int. Ed. 57 1351-5 doi: 10.1002/anie.201712769
    [25] Krauskopf T, Culver S P, Zeier W G 2018 Local tetragonal structure of the cubic superionic conductor Na3PS4 Inorg. Chem. 57 4739-44 doi: 10.1021/acs.inorgchem.8b00458
    [26] Monroe C, Newman J 2005 The impact of elastic deformation on deposition kinetics at lithium/polymer interfaces J. Electrochem. Soc. 152 396 doi: 10.1149/1.1850854
    [27] Albertus P, Babinec S, Litzelman S, Newman A 2018 Status and challenges in enabling the lithium metal electrode for high-energy and low-cost rechargeable batteries Nat. Energy 3 16-21 doi: 10.1038/s41560-017-0047-2
    [28] Famprikis T, Canepa P, Dawson J A, Islam M S, Masquelier C 2019 Fundamentals of inorganic solid-state electrolytes for batteries Nat. Mater. 18 1278-91 doi: 10.1038/s41563-019-0431-3
    [29] Hao S, Bailey J J, Iacoviello F, Bu J, Grant P S, Brett D J L, Shearing P R 2021 3D imaging of lithium protrusions in solid-state lithium batteries using x-ray computed tomography Adv. Funct. Mater. 31 2007564 doi: 10.1002/adfm.202007564
    [30] Fu K, et al 2017 Toward garnet electrolyte-based Li metal batteries: an ultrathin, highly effective artificial solid-state electrolyte/metallic Li interface Sci. Adv. 3 e1601659 doi: 10.1126/sciadv.1601659
    [31] Thangadurai V, Narayanan S, Pinzaru D 7 2014 Garnet-type solid-state fast Li ion conductors for Li batteries: critical review Chem. Soc. Rev. 43 4714-27 doi: 10.1039/c4cs00020j
    [32] Yu S, Siegel D J 2018 Grain boundary softening: a potential mechanism for lithium metal penetration through stiff solid electrolytes ACS Appl. Mater. Interfaces 10 38151-8 doi: 10.1021/acsami.8b17223
    [33] Liu X, et al 2021 Local electronic structure variation resulting in Li filament’ formation within solid electrolytes Nat. Mater. 20 1485-90 doi: 10.1038/s41563-021-01019-x
    [34] Han F, Westover A S, Yue J, Fan X, Wang F, Chi M, Leonard D N, Dudney N J, Wang H, Wang C 2019 High electronic conductivity as the origin of lithium dendrite formation within solid electrolytes Nat. Energy 4 187-96 doi: 10.1038/s41560-018-0312-z
    [35] Chen Y T, Jena A, Pang W K, Peterson V K, Sheu H S, Chang H, Liu R S 2017 Voltammetric enhancement of Li-ion conduction in al-doped Li7−xLa3Zr2O12 solid electrolyte J. Phys. Chem C 121 15565-73 doi: 10.1021/acs.jpcc.7b04004
    [36] Minami K, Mizuno F, Hayashi A, Tatsumisago M 2007 Lithium ion conductivity of the Li2S-P2S5 glass-based electrolytes prepared by the melt quenching method Solid State Ion. 178 837-41 doi: 10.1016/j.ssi.2007.03.001
    [37] Rangasamy E, Wolfenstine J, Sakamoto J 2012 The role of Al and Li concentration on the formation of cubic garnet solid electrolyte of nominal composition Li7La3Zr2O12 Solid State Ion. 206 28-32 doi: 10.1016/j.ssi.2011.10.022
    [38] Li G, Monroe C W 2019 Dendrite nucleation in lithium-conductive ceramics Phys. Chem. Chem. Phys. 21 20354-9 doi: 10.1039/C9CP03884A
    [39] Cheng L, et al 2015 Interrelationships among grain size, surface composition, air stability and interfacial resistance of al-substituted Li7La3Zr2O12 solid electrolytes ACS Appl. Mater. Interfaces 7 17649-55 doi: 10.1021/acsami.5b02528
    [40] Cheng L, Chen W, Kunz M, Persson K, Tamura N, Chen G, Doeff M 2015 Effect of surface microstructure on electrochemical performance of garnet solid electrolytes ACS Appl. Mater. Interfaces 7 2073-81 doi: 10.1021/am508111r
    [41] Singh D K, Henss A, Mogwitz B, Gautam A, Horn J, Krauskopf T, Burkhardt S, Sann J, Richter F H, Janek J 2022 Li6PS5Cl microstructure and influence on dendrite growth in solid-state batteries with lithium metal anode Cell Rep. Phys. Sci. 3 101043 doi: 10.1016/j.xcrp.2022.101043
    [42] Tsai C L, Roddatis V, Chandran C V, Ma Q, Uhlenbruck S, Bram M, Heitjans P, Guillon O 2016 Li7La3Zr2O12 interface modification for Li dendrite prevention ACS Appl. Mater. Interfaces 8 10617-26 doi: 10.1021/acsami.6b00831
    [43] Wu B, Wang S, Lochala J, Desrochers D, Liu B, Zhang W, Yang J, Xiao J 2018 The role of the solid electrolyte interphase layer in preventing Li dendrite growth in solid-state batteries Energy Environ. Sci. 11 1803-10 doi: 10.1039/C8EE00540K
    [44] Sharafi A, Haslam C G, Kerns R D, Wolfenstine J, Sakamoto J 2017 Controlling and correlating the effect of grain size with the mechanical and electrochemical properties of Li7La3Zr2O12 solid-state electrolyte J. Mater. Chem. A 5 21491-504 doi: 10.1039/C7TA06790A
    [45] Lee H J, Darminto B, Narayanan S, Diaz-Lopez M, Xiao A W, Chart Y, Lee J H, Dawson J A, Pasta M 2022 Li-ion conductivity in Li2OHCl(1−x)Brx solid electrolytes: grains, grain boundaries and interfaces J. Mater. Chem. A 10 11574 doi: 10.1039/D2TA01462A
    [46] Huang Z, Chen L, Huang B, Xu B, Shao G, Wang H, Li Y, Wang C A 2020 Enhanced performance of Li6.4La3Zr1.4Ta0.6O12 solid electrolyte by the regulation of grain and grain boundary phases ACS Appl. Mater. Interfaces 12 56118-25 doi: 10.1021/acsami.0c18674
    [47] Kim Y, Jo H, Allen J L, Choe H, Wolfenstine J, Sakamoto J, Pharr G 2016 The effect of relative density on the mechanical properties of hot-pressed cubic Li7La3Zr2O12 J. Am. Ceram. Soc. 99 1367-74 doi: 10.1111/jace.14084
    [48] Abdelouas A, et al 2019 Springer Handbook of Glass1st ednChamSpringer
    [49] Viallet V, Seznec V, Hayashi A, Tatsumisago M, Pradel A 2019 Glasses and glass-ceramics for solid-state battery applications Springer Handbook of GlassChamSpringer
    [50] Grady Z A, Wilkinson C J, Randall C A, Mauro J C 2020 Emerging role of non-crystalline electrolytes in solid-state battery research Front. Energy Res. 8 1-23 doi: 10.3389/fenrg.2020.00218
    [51] Das A, Sahu S, Mohapatra M, Verma S, Bhattacharyya A J, Basu S 2022 Lithium-ion conductive glass-ceramic electrolytes enable safe and practical Li batteries Mater. Today Energy 29 101118 doi: 10.1016/j.mtener.2022.101118
    [52] Hamon Y, Douard A, Sabary F, Marcel C, Vinatier P, Pecquenard B, Levasseur A 2006 Influence of sputtering conditions on ionic conductivity of lipon thin films Solid State Ion. 177 257-61 doi: 10.1016/j.ssi.2005.10.021
    [53] Bates J B, Dudney N J, Gruzalski G R, Zuhr R A, Choudhury A, Luck C F, Robertson J D 1993 Fabrication and characterization of amorphous lithium electrolyte thin films and rechargeable thin-film batteries J. Power Sources 43 103 doi: 10.1016/0378-7753(93)80106-Y
    [54] Wang Z, Santhanagopalan D, Zhang W, Wang F, Xin H L, He K, Li J, Dudney N, Meng Y S 2016 In situ stem-eels observation of nanoscale interfacial phenomena in all-solid-state batteries Nano Lett. 16 3760-7 doi: 10.1021/acs.nanolett.6b01119
    [55] Westover A S, Dudney N J, Sacci R L, Kalnaus S 2019 Deposition and confinement of Li metal along an artificial Lipon-Lipon interface ACS Energy Lett. 4 651-5 doi: 10.1021/acsenergylett.8b02542
    [56] Bates J B, Dudney N J, Neudecker B, Ueda A, Evans C D 2000 Thin-film lithium and lithium-ion batteries Solid State Ion. 135 33-45 doi: 10.1016/S0167-2738(00)00327-1
    [57] Neudecker B J, Dudney N J, Bates J B 2000 Lithium-free thin-film battery with in situ plated Li anode J. Electrochem. Soc. 147 517-23 doi: 10.1149/1.1393226
    [58] Kalnaus S, Westover A S, Kornbluth M, Herbert E, Dudney N J 2021 Resistance to fracture in the glassy solid electrolyte LiPON J. Mater. Res. 36 787-96 doi: 10.1557/s43578-020-00098-x
    [59] Jackman S D, Cutler R A 2012 Effect of microcracking on ionic conductivity in LATP J. Power Sources 218 65-72 doi: 10.1016/j.jpowsour.2012.06.081
    [60] Wolfenstine J, Allen J L, Sakamoto J, Siegel D J, Choe H 2018 Mechanical behavior of Li-ion-conducting crystalline oxide-based solid electrolytes: a brief review Ionics 24 1271-6 doi: 10.1007/s11581-017-2314-4
    [61] Nonemacher J F, Naqash S, Tietz F, Malzbender J 2019 Micromechanical assessment of AL/Y-substituted nasicon solid electrolytes Ceram. Int. 45 21308-14 doi: 10.1016/j.ceramint.2019.07.114
    [62] Porz L, Swamy T, Sheldon B W, Rettenwander D, Frmling T, Thaman H L, Berendts S, Uecker R, Carter W C, Chiang Y M 2017 Mechanism of lithium metal penetration through inorganic solid electrolytes Adv. Energy Mater. 7 1701003 doi: 10.1002/aenm.201701003
    [63] Cheng D, et al 2022 Freestanding LiPON: from fundamental study to uniformly dense Li metal deposition under zero external pressure (arXiv:2208.04402)
    [64] Su J, Pasta M, Ning Z, Gao X, Bruce P G, Grovenor C R M 2022 Interfacial modification between argyrodite-type solid-state electrolytes and Li metal anodes using LiPON interlayers Energy Environ. Sci. 15 3805 doi: 10.1039/d2ee01390h
    [65] Mercier R, Malugani J, Fahys B, Robert G 1981 Superionic conduction in Li2S - P2S5 - LiI - glasses Solid State Ion. 5 663-6 doi: 10.1016/0167-2738(81)90341-6
    [66] Menetrier M, Levasseur V, Delmas C, Audebert J, Hagenmuller P 1984 New secondary batteries for room temperature applications using a vitreous electrolyte Solid State Ion. 14 257-61 doi: 10.1016/0167-2738(84)90108-5
    [67] Kennedy J H, Yang Y 1987 Glass-forming region and structure in SiS2-Li-2S-LiX (X = Br, I) J. Solid State Chem. 257 252-7 doi: 10.1016/0022-4596(87)90081-8
    [68] Kondo S, Takada K, Yamamura Y 1992 New lithium ion conductors based on Li2S-SiS2 system Solid State Ion. 56 1183-6 doi: 10.1016/0167-2738(92)90310-L
    [69] Pradel A, Ribes M 1986 Electrical properties of lithium conductive silicon sulfide glasses prepared by twin roller quenching Solid State Ion. 19 351-5 doi: 10.1016/0167-2738(86)90139-6
    [70] Aotani N, Iwamoto K, Takada K, Kondo S 1994 Synthesis and electrochemical properties of lithium ion conductive glass, Li3PO4-Li2S-SiS2 Solid State Ion. 68 35-39 doi: 10.1016/0167-2738(94)90232-1
    [71] Hayashi A, Tatsumisago M, Minami T 1999 Electrochemical properties for the lithium ion conductive (100-x) (0.6Li2 S · 0.4SiS2) · xLi4SiO4 oxysulfide glasses J. Electrochem. Soc. 146 3472 doi: 10.1149/1.1392498
    [72] Tatsumisago M, Yamashita H, Hayashi A, Morimoto H, Minami T 2000 Preparation and structure of amorphous solid electrolytes based on lithium sulfide J. Non-Cryst. Solids 274 30-38 doi: 10.1016/S0022-3093(00)00180-0
    [73] Hayashi A, Hama S, Morimoto H, Tatsumisago M, Minami T 2001 Preparation of Li2S-P2S5 amorphous solid electrolytes by mechanical milling J. Am. Ceram. Soc. 84 477-9 doi: 10.1111/j.1151-2916.2001.tb00685.x
    [74] Ujiie S, Hayashi A, Tatsumisago M 2013 Preparation and ionic conductivity of (100−x)(0.8Li2S·0.2P2S5⋅xLiI glass-ceramic electrolytes J. Solid State Electrochem. 17 675-80 doi: 10.1007/s10008-012-1900-7
    [75] Seino Y, Ota T, Takada K, Hayashi A, Tatsumisago M 2014 A sulphide lithium super ion conductor is superior to liquid ion conductors for use in rechargeable batteries Energy Environ. Sci. 7 627-31 doi: 10.1039/C3EE41655K
    [76] Mizuno F, Hayashi A, Tadanaga K, Tatsumisago M 2005 New lithium-ion conducting crystal obtained by crystallization of the Li2S-P2S5 glasses Electrochem. Solid-State Lett. 8 A603 doi: 10.1149/1.2056487
    [77] Wang S, et al 2021 Influence of crystallinity of lithium thiophosphate solid electrolytes on the performance of solid-state batteries Adv. Energy Mater. 11 1-11 doi: 10.1002/aenm.202100654
    [78] Biesuz M, Sglavo V M 2019 Flash sintering of ceramics J. Eur. Ceram. Soc. 39 115-43 doi: 10.1016/j.jeurceramsoc.2018.08.048
    [79] Campos J V, Lavagnini I R, Zallocco V M, Ferreira E B, Pallone M J A, Rodrigues A C M Flash sintering with concurrent crystallization of Li1.5Al0.5Ge1.5(PO43 glass Preprinthttps://doi.org/10.2139/ssrn.4130828(posted online 8 Jun 2022)
    [80] Ning Z, et al 2021 Visualizing plating-induced cracking in lithium-anode solid-electrolyte cells Nat. Mater. 20 1121-9 doi: 10.1038/s41563-021-00967-8
    [81] Lee C H, Joo K H, Kim J H, Woo S G, Sohn H J, Kang T, Park Y, Oh J Y 2002 Characterizations of a new lithium ion conducting Li2O-SeO2-B2O3 glass electrolyte Solid State Ion. 149 59-65 doi: 10.1016/S0167-2738(02)00137-6
    [82] Kataoka K, Nagata H, Akimoto J 2018 Lithium-ion conducting oxide single crystal as solid electrolyte for advanced lithium battery application Sci. Rep. 8 9965 doi: 10.1038/s41598-018-27851-x
  • 加载中
图(6) / 表(1)
计量
  • 文章访问数:  1972
  • HTML全文浏览量:  852
  • PDF下载量:  302
  • 被引次数: 0
出版历程
  • 收稿日期:  2022-10-30
  • 录用日期:  2022-11-28
  • 修回日期:  2022-11-22
  • 刊出日期:  2022-12-16

目录

    /

    返回文章
    返回